NATURAL CONVECTION IN A DIAMOND-SHAPED RECEIVING CAVITY HEATED FROM THE BOTTOM CORNER AND FILLED WITH Fe3O4-H2O NANOFLUID IN THE PRESENCE OF THERMAL RADIATION
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Published:2023
Issue:13
Volume:54
Page:39-64
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ISSN:1064-2285
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Container-title:Heat Transfer Research
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language:en
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Short-container-title:Heat Trans Res
Author:
Chtaibi Khalid,Amahmid Abdelkhalk,Dahani Youssef,Hasnaoui Mohammed,Hamed Haïkel Ben
Abstract
Heat transfer of nanofluid Fe<sub>3</sub>O<sub>4</sub>-H<sub>2</sub>O generated by natural convection and thermal radiation in a diamond-shaped receiving cavity has been investigated numerically. The lower and upper corners of the rhombic receiver are kept isothermal in such a way to provide heating from the lower corner parts and maintain adiabatic the remaining nonactive portions of the walls. The lattice Bolkmann method has been used to simulate fluid flows and highlight the combined effects of the control parameters that are the Rayleigh number (Ra = 10<sup>3</sup> to 2 × 10<sup>6</sup>), the radiation parameter (Rd = 0 to 3), and the nanoparticles' volume fraction (φ = 0 to 4%). The obtained flow structures are either monocellular (MF) or bicellular (BF), depending on the initial conditions and the generated heat transfer rates corresponding to the resulting structures are improved by increasing the Rayleigh number, the nanoparticles' volume fraction, and the radiation parameter. All critical Rayleigh numbers leading to different types of transitions within the considered range of this parameter undergo a change by varying the volume fraction of nanoparticles and the radiation parameter.
Subject
Fluid Flow and Transfer Processes,Mechanical Engineering,Condensed Matter Physics
Reference36 articles.
1. Bardos, C., Golse, F., and Perthame, B., The Rosseland Approximation for the Radiative Transfer Equations, Commun. Pure Appl. Math., vol. 40, no. 6, pp. 691-721, 1987. DOI: 10.1002/cpa.3160400603 2. Baswara, R., Weimer, A., and Palumbo, R., Solar Thermochemical Process Technology, Encyclopedia Phys. Sci. Technol., vol. 15, pp. 237-256, 2001. 3. Brinkman, H.C., The Viscosity of Concentrated Suspensions and Solutions, J. Chem. Phys., vol. 20, no. 4, p. 571, 1952. DOI: 10.1063/1.1700493 4. Chen, M., Niu, X., Yu, P., Yamasaki, H., and Yamaguchi, H., Flow Behavior and Heat Transfer Characteristics in Rayleigh-Benard Laminar Convection with Fluid-Particle Interaction, Int. J. Heat Mass Transf., vol. 146, Article ID 118840, 2020. DOI: 10.1016/j.ijheatmasstransfer.2019.118840 5. Dogonchi, A.S. and Hashim, A., Heat Transfer by Natural Convection of Fe3O4-Water Nanofluid in an Annulus between a Wavy Circular Cylinder and a Rhombus, Int. J. Heat Mass Transf., vol. 130, pp. 320-332, 2019. DOI: 10.1016/j.ijheatmasstransfer. 2018.10.086
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